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基于深度神经模型开发跨模态表情识别。

Developing crossmodal expression recognition based on a deep neural model.

作者信息

Barros Pablo, Wermter Stefan

机构信息

Department of Informatics, University of Hamburg, Germany.

出版信息

Adapt Behav. 2016 Oct;24(5):373-396. doi: 10.1177/1059712316664017. Epub 2016 Oct 10.

Abstract

A robot capable of understanding emotion expressions can increase its own capability of solving problems by using emotion expressions as part of its own decision-making, in a similar way to humans. Evidence shows that the perception of human interaction starts with an innate perception mechanism, where the interaction between different entities is perceived and categorized into two very clear directions: positive or negative. While the person is developing during childhood, the perception evolves and is shaped based on the observation of human interaction, creating the capability to learn different categories of expressions. In the context of human-robot interaction, we propose a model that simulates the innate perception of audio-visual emotion expressions with deep neural networks, that learns new expressions by categorizing them into emotional clusters with a self-organizing layer. The proposed model is evaluated with three different corpora: The Surrey Audio-Visual Expressed Emotion (SAVEE) database, the visual Bi-modal Face and Body benchmark (FABO) database, and the multimodal corpus of the Emotion Recognition in the Wild (EmotiW) challenge. We use these corpora to evaluate the performance of the model to recognize emotional expressions, and compare it to state-of-the-art research.

摘要

一个能够理解情感表达的机器人可以通过将情感表达作为自身决策的一部分,以类似于人类的方式提高其解决问题的能力。证据表明,对人类互动的感知始于一种先天的感知机制,在这种机制中,不同实体之间的互动被感知并归类为两个非常明确的方向:积极或消极。在人童年时期成长过程中,这种感知会不断发展,并基于对人类互动的观察而形成,从而产生学习不同类别表达的能力。在人机交互的背景下,我们提出了一个模型,该模型用深度神经网络模拟对视听情感表达的先天感知,通过使用自组织层将它们分类到情感簇中来学习新的表达。我们使用三个不同的语料库对所提出的模型进行评估:萨里视听表达情感(SAVEE)数据库、视觉双模态面部和身体基准(FABO)数据库以及野外情感识别多模态语料库(EmotiW)挑战赛。我们使用这些语料库来评估该模型识别情感表达的性能,并将其与最先进的研究进行比较。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4a66/5098700/8142788f6644/10.1177_1059712316664017-fig1.jpg

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